SOLUTION: the 5th term in a geometric progression is 9 times the 3rd term and the sum of the 6th and 7th terms is 1944. determine the common ratio, the first term the sum of the 4th to 10th

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Question 1170436: the 5th term in a geometric progression is 9 times the 3rd term and the sum of the 6th and 7th terms is 1944. determine the common ratio, the first term the sum of the 4th to 10th terms inclusive

Found 2 solutions by Boreal, ikleyn:
Answer by Boreal(15235)   (Show Source):
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the common ratio is 3 since between the 3rd and 5th is a 9-fold increase
a1 is unknown
a2=3a1
a3=9a1
a5=81a1
a6=243a1
a7=729a1
the last two add to 1944=972a1
so a1=2, and r=3
-
sum of first 10 terms is 2(1-3^10)/-2=59048
sum of first four terms is 2(1-3^4)/-2=80
the sum of the 4th-10th terms inclusive is 58968
the series is 2/6/18/54/162/486/1458/4374/13122/39366

Answer by ikleyn(52781)   (Show Source):
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.

            There are two different progressions and two different answers.

The common ratio is   +/- = +/- 3.

Case 1.   Common ratio is 3

Then a1 is unknown a2 = 3a1 a3 = 9a1 a5 = 81a1 a6 = 243a1 a7 = 729a1 the last two terms add to 243a1 + 729a1 = 972a1 = 1944 so a1 = 2, and r = 3 - sum of first 10 terms is 2*(1-3^10)/(-2) = 59048 sum of first 3 terms is 2*(1-3^3)/(-2) = 26 the sum of the 4th to 10th terms inclusive is 59048 - 26 = 59022 the series is 2, 6, 18, 54, 162, 486, 1458, 4374, 13122, 39366.

Case 2.   Common ratio is -3

Then a1 is unknown a2 = -3a1 a3 = 9a1 a5 = -81a1 a6 = 243a1 a7 = -729a1 the last two terms add to -729a1 + 243a1 = -486a1 = 1944 so a1 = -4, and r = -3 - sum of first 10 terms is (-4)*(1-(-3)^10)/4 = 59048 sum of first 3 terms is (-4)*(1-(-3)^3)/4 = -28 the sum of the 4th to 10th terms inclusive is 59048 - (-28) = 59076 the series is -4, 12, -36, 108, -324, 972, -2916, , 8748, -26244.

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